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Intersecting topological nodal ring and nodal wall states in superhard superconductor FeB4

Feng Zhou, Ying Liu, Jianhua Wang, Minquan Kuang, Tie Yang, Hong Chen, Xiaotian Wang, Zhenxiang Cheng

DOI 10.1103/PhysRevMaterials.5.074201 · Physical Review Materials

T1

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Abstract

Novel materials with both topological nontrivial states and superconductivity have attracted considerable attention in recent years. Single-crystal FeB4 was recently synthesized and demonstrated to exhibit superconductivity at temperatures lower than 2.9 K, and its nanoindentation hardness was measured to be 65 GPa. In this study, based on first-principles calculations and the low-energy k·p effective Hamiltonian, we found that this Pnnm-type superhard FeB4 superconductor hosts topological behaviors with intersecting nodal rings (INRs) in the kx=0 and kz=0 planes and nodal wall states in the ky=π and kz=π planes. The observed surface drum-head-like (D-H-L) states on the [100] and [001] surfaces confirmed the presence of INR states in this system. According to our investigation results, FeB4, with its superconductivity, superior mechanical behaviors, one-dimensional and two-dimensional topological elements, and D-H-L surface states, is an existing single-phase target material that can be used to realize the topological superconducting state in the near future.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
FeB4

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2.9Pressure not reportedonset
CuxBi2Se3

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Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

3.8Pressure not reportedunknown
Sr0.065Bi2Se3

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—Pressure not reportedunknown
MoTe2

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0.1Pressure not reportedunknown

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